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Published on: August 8, 2022
Metabolic modulator perhexiline corrects energy deficiency and improves exercise capacity in symptomatic hypertrophic
Khalid Abozguia1, Perry Elliott, William McKenna
1School of Medicine and Dentistry, University of Aberdeen, Aberdeen, UK.
Insights
Perhexiline improved cardiac energy metabolism and diastolic function in patients with hypertrophic cardiomyopathy. This metabolic modulator increased exercise capacity, supporting its use in treating this condition.
Area of Science:
- Cardiology
- Metabolic Medicine
- Biochemistry
Background:
- Hypertrophic cardiomyopathy (HCM) is associated with impaired myocardial energy metabolism.
- The direct role of this energy deficiency in HCM pathophysiology is not fully established.
Purpose of the Study:
- To investigate if perhexiline, a metabolic modulator, can improve cardiac energy deficiency in HCM patients.
- To assess the impact of perhexiline on diastolic function and exercise capacity in HCM.
Main Methods:
- A randomized trial involving 46 patients with symptomatic nonobstructive HCM.
- Patients received either perhexiline (n=24) or placebo (n=22).
- Assessment included (31)P magnetic resonance spectroscopy for cardiac energetics, radionuclide ventriculography for diastolic function, and peak oxygen consumption (Vo(2)) for exercise capacity.
Main Results:
- Perhexiline significantly improved the myocardial phosphocreatine to adenosine triphosphate ratio, indicating enhanced cardiac energy status (P=0.003).
- Treatment with perhexiline normalized diastolic filling abnormalities during exercise (P=0.03).
- Key outcomes showed improvement in peak Vo(2) (P=0.003) and New York Heart Association class (P<0.001) with perhexiline compared to placebo.
Conclusions:
- Perhexiline effectively ameliorates cardiac energetic impairment and diastolic dysfunction in symptomatic HCM.
- The findings support the hypothesis that energy deficiency contributes to HCM pathophysiology.
- Metabolic therapies, such as perhexiline, warrant further investigation for HCM treatment.
Background:
Hypertrophic cardiomyopathy patients exhibit myocardial energetic impairment, but a causative role for this energy deficiency in the pathophysiology of hypertrophic cardiomyopathy remains unproven. We hypothesized that the metabolic modulator perhexiline would ameliorate myocardial energy deficiency and thereby improve diastolic function and exercise capacity.
Methods And Results:
Forty-six consecutive patients with symptomatic exercise limitation (peak Vo(2) <75% of predicted) caused by nonobstructive hypertrophic cardiomyopathy (mean age, 55±0.26 years) were randomized to perhexiline 100 mg (n=24) or placebo (n=22). Myocardial ratio of phosphocreatine to adenosine triphosphate, an established marker of cardiac energetic status, as measured by (31)P magnetic resonance spectroscopy, left ventricular diastolic filling (heart rate normalized time to peak filling) at rest and during exercise using radionuclide ventriculography, peak Vo(2), symptoms, quality of life, and serum metabolites were assessed at baseline and study end (4.6±1.8 months). Perhexiline improved myocardial ratios of phosphocreatine to adenosine triphosphate (from 1.27±0.02 to 1.73±0.02 versus 1.29±0.01 to 1.23±0.01; P=0.003) and normalized the abnormal prolongation of heart rate normalized time to peak filling between rest and exercise (0.11±0.008 to -0.01±0.005 versus 0.15±0.007 to 0.11±0.008 second; P=0.03). These changes were accompanied by an improvement in primary end point (peak Vo(2)) (22.2±0.2 to 24.3±0.2 versus 23.6±0.3 to 22.3±0.2 mL · kg(-1) · min(-1); P=0.003) and New York Heart Association class (P<0.001) (all P values ANCOVA, perhexiline versus placebo).
Conclusions:
In symptomatic hypertrophic cardiomyopathy, perhexiline, a modulator of substrate metabolism, ameliorates cardiac energetic impairment, corrects diastolic dysfunction, and increases exercise capacity. This study supports the hypothesis that energy deficiency contributes to the pathophysiology and provides a rationale for further consideration of metabolic therapies in hypertrophic cardiomyopathy.
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